EP2637571A2 - Remote center of motion robot for medical image scanning and image-guided targeting - Google Patents
Remote center of motion robot for medical image scanning and image-guided targetingInfo
- Publication number
- EP2637571A2 EP2637571A2 EP11840646.1A EP11840646A EP2637571A2 EP 2637571 A2 EP2637571 A2 EP 2637571A2 EP 11840646 A EP11840646 A EP 11840646A EP 2637571 A2 EP2637571 A2 EP 2637571A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- freedom
- ultrasound
- degree
- driver module
- robot
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
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Classifications
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/44—Constructional features of the ultrasonic, sonic or infrasonic diagnostic device
- A61B8/4444—Constructional features of the ultrasonic, sonic or infrasonic diagnostic device related to the probe
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N7/00—Ultrasound therapy
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B34/00—Computer-aided surgery; Manipulators or robots specially adapted for use in surgery
- A61B34/30—Surgical robots
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/08—Clinical applications
- A61B8/0833—Clinical applications involving detecting or locating foreign bodies or organic structures
- A61B8/0841—Clinical applications involving detecting or locating foreign bodies or organic structures for locating instruments
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/08—Clinical applications
- A61B8/0833—Clinical applications involving detecting or locating foreign bodies or organic structures
- A61B8/085—Clinical applications involving detecting or locating foreign bodies or organic structures for locating body or organic structures, e.g. tumours, calculi, blood vessels, nodules
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/12—Diagnosis using ultrasonic, sonic or infrasonic waves in body cavities or body tracts, e.g. by using catheters
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/13—Tomography
- A61B8/14—Echo-tomography
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/42—Details of probe positioning or probe attachment to the patient
- A61B8/4209—Details of probe positioning or probe attachment to the patient by using holders, e.g. positioning frames
- A61B8/4218—Details of probe positioning or probe attachment to the patient by using holders, e.g. positioning frames characterised by articulated arms
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/42—Details of probe positioning or probe attachment to the patient
- A61B8/4245—Details of probe positioning or probe attachment to the patient involving determining the position of the probe, e.g. with respect to an external reference frame or to the patient
- A61B8/4254—Details of probe positioning or probe attachment to the patient involving determining the position of the probe, e.g. with respect to an external reference frame or to the patient using sensors mounted on the probe
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/48—Diagnostic techniques
- A61B8/483—Diagnostic techniques involving the acquisition of a 3D volume of data
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B10/00—Instruments for taking body samples for diagnostic purposes; Other methods or instruments for diagnosis, e.g. for vaccination diagnosis, sex determination or ovulation-period determination; Throat striking implements
- A61B10/02—Instruments for taking cell samples or for biopsy
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B10/00—Instruments for taking body samples for diagnostic purposes; Other methods or instruments for diagnosis, e.g. for vaccination diagnosis, sex determination or ovulation-period determination; Throat striking implements
- A61B10/02—Instruments for taking cell samples or for biopsy
- A61B10/0233—Pointed or sharp biopsy instruments
- A61B10/0241—Pointed or sharp biopsy instruments for prostate
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B90/00—Instruments, implements or accessories specially adapted for surgery or diagnosis and not covered by any of the groups A61B1/00 - A61B50/00, e.g. for luxation treatment or for protecting wound edges
- A61B90/36—Image-producing devices or illumination devices not otherwise provided for
- A61B90/37—Surgical systems with images on a monitor during operation
- A61B2090/378—Surgical systems with images on a monitor during operation using ultrasound
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/48—Diagnostic techniques
- A61B8/485—Diagnostic techniques involving measuring strain or elastic properties
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/52—Devices using data or image processing specially adapted for diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/5207—Devices using data or image processing specially adapted for diagnosis using ultrasonic, sonic or infrasonic waves involving processing of raw data to produce diagnostic data, e.g. for generating an image
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N7/00—Ultrasound therapy
- A61N7/02—Localised ultrasound hyperthermia
Definitions
- the present invention pertains to a remote center of motion robot for medical image scanning. More particularly, the present invention pertains to a remote center of motion robot for medical image scanning and image-guided targeting.
- Prostate cancer is the most common form of cancer in American men. L ike other cancers, early diagnosis and treatment is critical to the clinical management of the disease, and to preserving patients' quality of life and increasing life expectancy. In furtherance of these objectives, advanced imaging technologies have been developed to improve physicians' ability to accurately detect and stage clinically relevant cellular changes and to deliver treatment.
- Ultrasound elastography is an emerging imaging modality with a potential to improve cancer detection.
- the principle behind elastography is that different tissues exhibit distinct strain profiles under stress. If stress is induced (excited) with an ultrasound probe, images may be used to visualize the resulting strain patterns. During compression and retraction motions, zones of the image that remain relatively uncompressed reveal zones of higher stiffness which may correlate to cancer nodules. Elastography currently involves freehand probe motion to induce the stress. Consequently, the uniformity of repeated compression and retraction of the probe is critical to optimizing the reliability of elastography.
- Physicians typically screen for prostate cancer by performing a digital rectal examination and measuring the level of Prostate Specific Antigen (PSA) in the blood.
- PSA Prostate Specific Antigen
- Prostate biopsy may be performed either transrectally (TR), during which a biopsy needle is inserted through the wall of the rectum, or via the transperineal (TP) route whereby physicians insert needles percutaneously in the region between the scrotum and anus.
- TR transrectally
- TP transperineal
- appropriate needle insertion sites are determined based on physician experience and the procedure is guided by transrectal sonography or another imaging technology.
- Brachytherapy is available to patients whose biopsy results show abnormal histological changes within the prostate.
- the definitive treatment for low and medium risk prostate cancer was radical prostatectomy or external beam radiation therapy. More recently, practitioners have successfully used brachytherapy to achieve equivalent outcomes.
- Brachytherapy accounts for a significant and growing proportion of prostate cancer treatments, as it is delivered with minimal invasiveness in an outpatient setting. Brachytherapy involves inserting multiple radioactive "seeds" into the prostate gland either temporarily (high dose-rate (HDR) brachytherapy), or permanently (low dose rate (LDR) brachytherapy).
- Brachytherapy like transrectal and transperineal biopsy, requires multiple punctures to obtain multiple tissue cores.
- Transperineal biopsy is often performing using brachytherapy mapping templates to facilitate localization of cancerous tissue and to guide future biopsies. Both brachytherapy and biopsy are typically guided by 2-dimensional (2-D) transrectal ultrasound (TRUS). While 2-D TRUS provides adequate imaging of the soft tissue anatomy, it does not allow for localization or precise placement of biopsy needles or implanted brachytherapy seeds.
- 2-D TRUS provides adequate imaging of the soft tissue anatomy, it does not allow for localization or precise placement of biopsy needles or implanted brachytherapy seeds.
- LRP laparoscopic radical prostatectomy
- TRUS probes are often operated manually; as such, image stability is comprised and the probe position data that is required for 3-D computation is lost. Also, TRUS systems have been too large to be used in tandem with advanced robotically- assisted minimally invasive surgical systems, where the space between the surgical robot and the patient is too limited to accommodate a human assistant for operating the TRUS system.
- Robotic systems have recently emerged for TRUS probe tracking and needle interventions. Although these systems improve image stability and allow the operator to track probe position, these systems typically use extrinsic optical or electromagnetic tracking systems that lack the automated motion capabilities required to obtain uniform images or to digitally lock a trajectory. Another limitation of some robotic systems is that they commonly handle the needle rather than the probe and are built for transperineal rather than endocavity access.
- the systems are not adaptable for TRUS-guided LRP and the points at which braehylherapy or biopsy needles are inserted must still be determined based on surgeon experience.
- a method of providing navigation during surgery and medical interventions comprises providing a robotic apparatus to manipulate an ultrasound imaging transducer in tandem with at least one medical instrument suitable as a fiducial marker, scanning a region of interest and measuring at least one parameter of at least one anatomical feature therein with the ultrasound imaging transducer, tracking the position of the imaging transducer during surgery and interventions using a programmable computer linked to the robotic apparatus, applying the information obtained from tracking the transducer to construct at least one three-dimensional model of the region of interest in which the medical instrument can be visualized during the surgery or intervention, and manipulating the medical instrument about the region of interest using the information derived from the at least one three- dimensional model.
- a robotic apparatus for positioning at least one imaging probe comprises a support arm, a remote center of motion module operatively connected to the support arm, the remote center of motion module having a parallelogram structure built with belts and having at least two rotational degrees of freedom, and a driver module operatively connected to the remote center of motion module, the driver module for manipulating the imaging probe in at least one degree of freedom, the driver module providing one degree of freedom around a first rotation axis and/or one linear degree of freedom for translation along a second axis.
- an apparatus for performing ultrasound-guided interventions comprises a remote center of motion module providing at least two rotational degrees of freedom, and a driver module providing at least one degree of freedom for manipulating an imaging probe, the driver module providing one degree of freedom around a first rotation axis and/or one linear degree of freedom for translation along a second axis, aligned with the longitudinal axis of the end-effector, and the driver module further comprising a rotary guide and rail, the rail geometry for allowing an additional medical instrument to positioned adjacent the imaging probe.
- a robotic apparatus for performing ultrasound elastography about the body of a patient comprises a remote center of motion module providing at least two rotational degrees of freedom, a driver module providing at least one degree of freedom for manipulating an ultrasound transducer, the driver module providing one degree of freedom around a first rotation axis and/or one linear degree of freedom for translation along a second axis, aligned with the longitudinal axis of the ultrasound transducer, and a programmable computer system for controlling repeated compression and retraction of the ultrasound transducer for palpating the anatomic region of interest.
- a robotic apparatus for performing needle biopsies on a patient comprises a remote center of motion module providing at least two rotational degrees of freedom, a driver module providing at least one degree of freedom for manipulating a biopsy needle, the driver module providing one linear degree of freedom for translation along an axis, and a programmable computer system for controlling insertion and retraction of the biopsy needle to obtain a tissue sample from an anatomic region of interest.
- FIG. 1 illustrates a kinematic diagram of an exemplary device according to the features of the present invention.
- FIG. 2 illustrates a kinematic diagram of another exemplary device according to the features of the present invention.
- FIG. 3(a) illustrates a graphical representation of the RCM mechanism implementing Z-Y-X Euler angles according to the features of the present invention.
- FIG. 3(b) illustrates a graphical- representation of the fixed frame X-Y-Z rotations of the tool frame ⁇ T ⁇ in the fixed base frame ⁇ B ⁇ according to the features of the present invention.
- FIG. 4 illustrates a perspective view of portions of the exemplary device according to features of the present invention.
- FIG. 5 illustrates a side elevational view of portions of the exemplary device according to features of the present invention.
- FIG. 6 illustrates an exploded view of a driver module of the exemplary device according to features of the present invention.
- FIG. 7 illustrates a base holder with an encoder for the driver module of the exemplary device according to FIG . . 6.
- FIG. 8 illustrates a perspective view of yet another exemplary device according to features of the present invention.
- FIG. 9 illustrates a side elevation view of the yet another exemplary device according to features of the present invention.
- FIG. 10 illustrates an exploded view of a driver module of the yet another exemplary device according to features of the present invention.
- FIG. 1 1 illustrates a schematic of the exemplary device used in tandem with a DA VINCI® robot according to features of the present invention.
- FIG. 12 illustrates a schematic view of the exemplary device used in tandem with a DA VINCI® robot according to features of the present invention.
- FIG. 13 illustrates a system block diagram and safety features of the exemplary system according to features of the present invention.
- FIG. 14(a) is a photograph of the experimental setup having a TRUS probe supported by the exemplary device according to features of the present invention.
- FIG. 14(b) is a post-processed 3-D reconstruction from ultrasound images based on segmentation according to features of the present invention.
- FIG. 14(c) is a fast processed 3-D representation of the imaged gland using volume rendering of the gathered image space.
- the present invention pertains to a remote center of motion robot for medical image scanning and image-guided targeting, hereinafter referred to as the "Euler” robot.
- the Euler robot allows for ultrasound scanning for 3-Dimensional (3-D) image reconstruction and enables - a variety of robot-assisted image-guided procedures, such as needle biopsy, percutaneous therapy delivery, image-guided navigation, and facilitates image-fusion with other imaging modalities.
- the Euler robot can also be used with other handheld medical imaging probes, such as gamma cameras for nuclear imaging, or for targeted delivery of therapy such as high-intensity focused ultrasound (HIFU).
- 3-D ultrasound probes may also be used with the Euler robot to provide automated image-based targeting for biopsy or therapy delivery.
- the Euler robot enables the application of special motion-based imaging modalities, such as ultrasound elastography.
- the Euler robot uses remote center of motion kinematics, which is a characteristic of minimally invasive access devices.
- the Euler robot according to features of the present invention is also applicable to manipulating other medical instruments and devices, such as laparoscopic instruments, including ultrasound.
- the Euler robot 10 includes a support arm 12 and a remote center of motion (RCM) module 14, which is operatively connected to the support arm 12.
- the support arm 12 is shown as having a generic structure with two spherical joints 16 and one cylindrical joint 18 which can be located at a desired location to support the base of the Euler robot 10 in place as needed for the clinical operation.
- a mount 20 may also be provided at the end of the support arm 12, which can be attached to a fixed support such as a medical table.
- the remote center of motion module preferably has a parallelogram structure built with belts, as described in U.S. Patent No. 7,021 , 173 (the ⁇ 73 patent), the entire contents of which are incorporated by reference herein.
- the RCM module includes first, second, and third connecting link units, the first connecting link unit coupled to a base link unit at a passive revoiute joint.
- the base adjustment angle can be changed by adjusting the angle between the base link unit and first connecting link unit.
- the base link unit further comprises a base shaft, which provides one rotational degree of freedom about a first axis.
- a second connecting link unit is coupled to the first connecting link unit at a revoiute joint, and the second connecting link unit is further coupled to a third connecting link unit by another revoiute joint.
- the third connecting link unit is configured to receive, at another joint (output shaft), a driver or holder for an end-effector, such as an ultrasound probe, biopsy needle, or other medical instrument.
- the revoiute joint between the first and second connecting link units may be actuated by motor, while the revoiute joints between the second and third connecting link units and at the output shaft are coupled to the first revoiute joint through a belt-drive mechanism.
- the second rotational axis of the RMC module that provides a second degree of freedom is materialized by the first, second, and third connecting link units and the end-effector/driver holder.
- the system has been designed so that the second connecting link may be actuated with respect to the first, while the third connecting link maintains its parallel orientation with respect to the first connecting link.
- the end-effector holder maintains its parallel orientation with respect to the second connecting unit.
- the configuration of the first and second rotation axes and corresponding rotating joints and connecting links form a double- parallelogram-based structure. This design allows for rotating the end-effector about an axis, y, which is remote from the mechanism and forms the classic RCM design.
- the RCM module 14 preferably presents two rotary degrees of freedom (DOF) (Ry, Rz) about joints 30 and 32 with axes intersecting at an RCM pivot point.
- DOF degrees of freedom
- An important feature of this RCM mechanism is that its structure is located from the pivot point, so that space is cleared from the medical intervention and current instrument and/or probe.
- RCM mechanism may be used, depending upon application and design preference.
- a driver module 26 may be operatively connected to the RCM module 14.
- the driver module manipulates an imaging probe 24 positioned therein in at least two degree of freedoms.
- the driver module 26 may provide one degree of freedom around a first rotation axis Rx and one linear degree of freedom for translation along a second axis Tx.
- an alternative driver module 36 may be operatively connected to the RCM module 14.
- the driver module 36 manipulates the imaging probe 24 (positioned therein) in one degree of freedom.
- the driver module 36 provides one degree of freedom around a first rotation axis Rx.
- the driver modules can be constructed such that palpations are allowed for elastography and/or the robot is adapted for holding and operating a needle for biopsy.
- the probe 24 is moved to sweep the region of interest for imaging. Motion is also used to orient the probe as needed for image-guided targeting.
- a main advantage is that the robot automatically tracks the position and orientation of the image space because it handles the probe. As such, intraoperative image-to-robot registration which is common for most image-guided robots is not required. Instead, a calibration is performed once, ahead of time, and should remain constant.
- FIGS. 3(a) and (b) the orientation of the tool frame T (end-effector instrument) can be described by a classic set of yaw, pitch, and roll Euler angles (Z-Y-X).
- FIG. 3(a) is a symbolic representation of the RCM module implementing Z-Y-X Euler angles
- FIG. 3(b) is a fixed frame X-Y-Z rotations of its tool frame ⁇ T ⁇ in the fixed base frame ⁇ B ⁇ .
- the remote axis of the RCM mechanism uses a parallelogram mechanism implemented with two belts, as described in U.S. Patent No. 7,021 ,173. Since these joints are mechanically coupled, they are represented symbolically with a single joint connecting links 1 -2.
- the Euler robot implements a sequence of three rotations performed
- R represent the rotation matrices of the individual frames associated with the links.
- the Euler robot with the driver module 26 will be described in more detail.
- the RCM module 14 supporting the ultrasound probe 24 is illustrated in its folded/collapsed position, which the parallelogram is collapsed, as shown in FIGS. 4 and 5.
- An ultrasound probe 24 is mounted using an adapter 40 that is custom built to match the shape of the probe.
- adapter 40 that is custom built to match the shape of the probe.
- various other probes may be attached to the driver by other special adapters and the like.
- the adapter 40 may be attached to the driver 26 through preload plates 42, including sensors, as is supported by a structure including a linear rail 44 and guide 46.
- the linear rail 44 is actuated with a ball screw 48 by a geared servomotor 50.
- the linear rail 44 and guide 46 are then supported by the rail structure of a custom built rotary rail 52 and guide 54.
- the rotary rail 52 preferably presents a horseshoe shape and comprises a spur gear sector 56 mounted between two rail parts.
- the rotary rail 52 and guide 54 present a similar structure to classic linear ball rails, but the rails have circular geometry so that the resulting motion is rotary rather than linear.
- ball grooves 60 are made in the guides and on each side of the rail 52, and two series of steel balls 62 circulate in these grooves and then recirculate through special paths made within the blocks of the guides through a ball recirculation path 64.
- actuation of the horseshoe shaped rotary rail 52 is given by its gear sector 66 which is engaged by a pinion 68 from a geared servomotor 70.
- Both axes are equipped with redundant encoders 72, 74, one encoder 72 connected directly to the screw 48, the other encoder 74 connected to the pinion 68 of the rotary axes through another pinion.
- a set of hardware limit switches 76 is used on each axis. Since both the motor and redundant encoders are incremental, these are also used for homing.
- a set of five force sensors are used to measure all force-torques interactions of the probe 24 except for the torque exerted about its longitudinal axis.
- the force sensors are miniature quartz sensor series with extremely flat design for measuring dynamic and quasistatic forces, but other types of sensors are possible.
- Four of the sensors are intercalated between the probe adapter 40 and the RT driver 26, to measure all forces and moments exerted lateral to the probe 24.
- the axial force is measured by a sensor intercalated between the ball nut and the rotary rail 52.
- the RT driver 26 implements a rotation which in addition to the RCM module completes the set of three Euler orientation angles. Probe adapters are built so that these align with the longitudinal axis of the probe. The RT driver also provides a linear degree of freedom for motion along this axis.
- the horseshoe geometry of the rotary rail has been chosen to clear the space above the ultrasound probe and so facilitate manual access and manipulation of needles about the probe for ultrasound-guided interventions such as biopsy.
- the construction can be substantially simplified by using a disk like structure for the rotary axis which eliminates the need for the rotary ball rails and guide.
- This specific kinematic arrangement and order of the R and T guides and rails presented above has been chosen based on two considerations: 1) to ensure that the space cleared for manual access remains above the probe during rotation, and 2) to render a compact and sturdy mechanical structure. Since the probe adapter must have a long shape to firmly hold the handle of the probe, the most appropriate place of the linear rail resides along its side, as shown in. The linear guide must then attach to the horseshoe rotary rail. Consequently, the rotary guide should preferably base the driver. However, other structures and orientations are possible, depending upon application and design preference.
- the Euler robot with the driver module 36 (R driver) will be described in more detail.
- the RCM module 14 supporting the ultrasound probe 24 is illustrated in its folded/collapsed position, which the parallelogram is collapsed, as shown in FIGS. 8 and 9.
- An ultrasound probe 24 is mounted using an adapter 90 that is custom built to match the shape of the probe 24.
- adapter 90 that is custom built to match the shape of the probe 24.
- various other probes may be attached to the driver by other special adapters and the like.
- an ultrasound probe 24 (external body probe shown) is supported with an adapter 90 so that various probes can be used.
- the adapter 90 also provides a regular geometric shape for mounting the probe 24 because typical handheld probes have notoriously irregular geometry.
- the adapter 90 may also include a set of mounting clips 92 for easy attachment/disconnection to the driver 36. Overall, these features ensure that the same probe 24 can be repeatedly connected to the driver 36 in the same relative position and orientation. This is.important to maintain the calibration of the image frame with respect to the robot.
- the driver 36 presents a disk like structure.
- the adapter 90 of the probe 24 connects to a central rotor 94 that spins the probe 24.
- the rotor 94 is supported by a set of ball bearings 96 and o-rings 98, which help to insolate the mechanisms.
- the races of the bearings are built within the body 100 and cap 102 of the driver 36.
- the bearings do not use a cage, but a sequence of intercalated slightly smaller balls. These normally roll in a reversed direction than the main balls possibly reducing friction.
- the rotor 94 is engaged by a spur gear transmission from a servomotor 104 having gears 105, which is contained within the motor cover 106.
- a limit switch 104 mounted on the base triggers a rotary location for homing an incremental encoder.
- the driver 36 does not use redundant encoding, but could simply be added with another pinion 107 engaged by the gear, similar to the RT Driver described above.
- the body 100 of the driver connects to the RCM module 14 through a euslom made force sensor 108 to measure the force exerted on the probe in the axial direction, which is secured within the mount caps 109.
- a structure of four strain concentration elements may be used. Strain gauges are applied to the opposite sides of a bridge and a half-bridge connection may be used for the measurement.
- FIG. 13 a block diagram of the system is presented in, showing its operation with an ultrasound probe.
- a video camera is also included for system monitoring in applications where direct observation of the Euler robot may be difficult, such as the tandem robot approach described in the following sections.
- the controller of the robot may be based on an Intel (Santa Clara, CA), Core 2 Quad Q9550 processor on Huawei (ASUSTeK. Computer Inc., Taiwan), P5N7A-VM motherboard with 4GB of DDR2 memory running Windows XP (Microsoft Corp, Redmond, WA).
- the computer system may be equipped with a built-in uninterruptable power supply or operation safety and short range portability.
- Motor control may be implemented on an MC8000-DUAL (PMDl, Victoria, B.C., Canada) motion control card with onboard digital signal processor for real-time motion control. This card presents dual quadrature decoders and counters for each axis, used for the motor and redundant encoders of each axis.
- Linear servomotor amplifiers may be used for all four axes.
- a purpose built relay and watchdog board may be included.
- a single 50 connector cable connects the PC to a connection box at the base of the passive arm.
- the arm mounts to a custom oversized rail for increased rigidity.
- the connection box also includes the amplifiers for force sensors to reduce the length of force sensor cables.
- the watchdog checks the state of several components of the system once every 100ms, disabling power to the motor amplifiers if a faulty condition is detected.
- Two visual signs are used to signal the operation state of the robot being powered and in motion.
- An Emergency Stop button disables the system and also suspends motor amplifier power. The operation of the system is performed from either a 2 -DOF joystick equipped with RCM or RT Driver enable buttons, or under numeric control.
- the software of the TRUS Robot consists of axis-level motion control software, robot kinematics software, ultrasound visualization, and 3-D image processing software.
- Motion control software is built in Visual C++ (Microsoft Corp, Redmond, WA) based on high-level libraries of functions of the motion control card (MCI-SoflLib, PMD1). Imaging components and interface to the robot are also written in Visual C++ based on the Amira Visualization platform (Visage Imaging Inc, San Diego, CA).
- the positional data along with the images is readily available. This allows recording image-position data pairs for robot navigation and 3-D reconstruction.
- the robot may scan the prostate in arbitrary directions.
- a rotary scan about the probe axis is normally proffered to reduce soft tissue deflections.
- Special imaging algorithms were developed for the rotary scan, because typically 3-D reconstruction is based on parallel image slices (for example CT or MRI).
- the present robot facilitates navigation during surgery and medical interventions.
- the robotic apparatus may be used to manipulate the ultrasound imaging transducer, in tandem with the at least.one medical instrument suitable as a fiducial marker.
- a region of interest is scanned and at least one parameter of at least one anatomical feature is measured therein with the ultrasound imaging transducer.
- the position of the imaging transducer is tracked during surgery and interventions using a programmable computer linked to the robotic apparatus.
- the information obtained from tracking is applied to the transducer to construct at least one three-dimensional model of the region of interest in which the medical instrument can be visualized during the surgery or intervention.
- the medical instrument is manipulated about the region of interest using the information derived from the at least one three-dimensional model.
- the particular medical instrument used preferably includes at least one arm and associated or incorporated instrument of a robotically-assisted minimally invasive surgical system, including a therapy delivery device, needle for obtaining tissue samples, fiducial marker, or laparoscopic or other surgical instrument.
- the robotic apparatus may be used in tandem with a medical procedure performed manually or robotically. During scanning of the ultrasound transducer, the medical instrument is visible as a hyperechoic region in at least one live ultrasound image captured intraoperatively. The apparatus manipulates the ultrasound imaging transducer to scan in arbitrary directions. The robotic apparatus allows continuous tracking of the ultrasound transer position within the available reference frame. A computer system captures at least one ultrasound image and the corresponding ultrasound imaging transducer position coordinates. The robotic apparatus provides measurements of the remote center of motion and ultrasound transducer drive angles from which ultrasound images are acquired. The information gathered from the images are segmented and used for producing a three-dimensional ultrasound image volume of anatomic features of interest in the target surgical site.
- the Euler robot 120 is used in tandem with a DA VINCI® robot 122.
- the Euler robot 120 may be attached to the end of the surgical table, in the confined space below the DA VINCI® robot 122, and may be maneuvered by a joystick 123.
- ultrasound images are acquired through a computer system 124 and presented to the surgeon on the console 126 along the current laparoscopic view using a side-by-side display.
- a video camera 128 may be used to visualize the surgical site, and provide images to the display.
- the Euler robot may be used in connection with elastography.
- a programmable computer system may be provided for controlling repeated compression and retraction of the ultrasound transducer for palpating the anatomic region of interest.
- the Euler robot may be used in connection with performing needle biopsies on a patient.
- a programmable computer system may be provided for controlling insertion and retraction of the biopsy needle to obtain a tissue sample from an anatomic region of interest.
- Example has been included to provide guidance to one of ordinary skill in the art for practicing representative embodiments of the presently disclosed subject matter.
- those of skill can appreciate that the following Example is intended to be exemplary only and that numerous changes, modifications, and alterations can be employed without departing from the scope of the presently disclosed subject matter.
- the following Example is offered by way of illustration and not by way of limitation.
- FIG. 14(a) shows a mockup which simulates the pelvic bones, prostate, bladder, urethra, and two structures representing neurovascular bundles.
- the mockup was gelatin based, made of 300 Bloom gelatin powder in solution with sorbitol, glycerin, and water, to create a realistic ultrasound view. Images acquired with a rotary scan were post processed for segmentation and represented, as shown in FIG. 14(b).
- FIG. 14(c) shows a 3-D representation of the prostate that is generated directly from the "gathered” image space, using a "volume rendering” mode. This can display the 3-D shape of the gland without segmenting it.
- the robotically-assisted ultrasound manipulator of the present invention allows intrinsic tracking of the probe position and the orientation of the image space, which greatly benefits performing brachytherapy, needle biopsy, LRP, and transrectal ultrasound elastography. Practitioners also benefit from the remote center of motion kinematics in a compact system that extends the application range to manipulating medical instruments and devices such as laparoscopic instruments, including laparoscopic ultrasound. Also, the compact configuration allows practitioners to use the robot in tandem with robotically-assisted minimally invasive surgical systems. Finally, a robotic system that automatically tracks ultrasound probe position and that permits the uniform application and retraction of the probe optimizes the quality and reliability of ultrasound elastography.
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- Health & Medical Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- Engineering & Computer Science (AREA)
- Surgery (AREA)
- Veterinary Medicine (AREA)
- Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
- Public Health (AREA)
- General Health & Medical Sciences (AREA)
- Biomedical Technology (AREA)
- Animal Behavior & Ethology (AREA)
- Medical Informatics (AREA)
- Molecular Biology (AREA)
- Heart & Thoracic Surgery (AREA)
- Radiology & Medical Imaging (AREA)
- Physics & Mathematics (AREA)
- Pathology (AREA)
- Biophysics (AREA)
- Robotics (AREA)
- Vascular Medicine (AREA)
- Ultra Sonic Daignosis Equipment (AREA)
- Magnetic Resonance Imaging Apparatus (AREA)
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Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US41258910P | 2010-11-11 | 2010-11-11 | |
| PCT/US2011/060362 WO2012065058A2 (en) | 2010-11-11 | 2011-11-11 | Remote center of motion robot for medical image scanning and image-guided targeting |
Publications (3)
| Publication Number | Publication Date |
|---|---|
| EP2637571A2 true EP2637571A2 (en) | 2013-09-18 |
| EP2637571A4 EP2637571A4 (en) | 2017-07-12 |
| EP2637571B1 EP2637571B1 (en) | 2020-01-08 |
Family
ID=46051580
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP11840646.1A Active EP2637571B1 (en) | 2010-11-11 | 2011-11-11 | Remote center of motion robot for medical image scanning and image-guided targeting |
Country Status (5)
| Country | Link |
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| US (1) | US20140039314A1 (en) |
| EP (1) | EP2637571B1 (en) |
| KR (1) | KR102048352B1 (en) |
| CN (1) | CN103200877B (en) |
| WO (1) | WO2012065058A2 (en) |
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| CN103200877B (en) | 2016-02-10 |
| US20140039314A1 (en) | 2014-02-06 |
| WO2012065058A2 (en) | 2012-05-18 |
| KR102048352B1 (en) | 2019-11-25 |
| EP2637571B1 (en) | 2020-01-08 |
| CN103200877A (en) | 2013-07-10 |
| WO2012065058A3 (en) | 2012-08-02 |
| KR20140024837A (en) | 2014-03-03 |
| EP2637571A4 (en) | 2017-07-12 |
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